This paper describes an experimental investigation to determine the mechanism governing nucleate pool boiling heat transfer in refrigerant-oil mixtures, the role diffusion plays in this process, and the influence of the fluid mixture properties. Boiling heat transfer data were taken in mixtures of up to 10 percent oil by weight in R-113. Thermophysical properties of the mixtures (density, viscosity, surface tension, specific heat, and contact angle) were measured. The decrease in heat transfer coefficient with increasing oil concentration is attributed to diffusion in an oil-enriched region surrounding the growing vapor bubbles. A correlation based on the postulated mechanism is presented which shows fair agreement with the experimental data from this study and with data obtained from the literature.
Skip Nav Destination
Article navigation
February 1984
Research Papers
Prediction of Nucleate Pool Boiling Heat Transfer Coefficients of Refrigerant-Oil Mixtures
M. K. Jensen,
M. K. Jensen
Department of Mechanical Engineering, University of Wisconsin-Milwaukee, Milwaukee, Wis. 53201
Search for other works by this author on:
D. L. Jackman
D. L. Jackman
Water Technologies Division, Aqua-Chem, Inc., Milwaukee, Wis. 53201
Search for other works by this author on:
M. K. Jensen
Department of Mechanical Engineering, University of Wisconsin-Milwaukee, Milwaukee, Wis. 53201
D. L. Jackman
Water Technologies Division, Aqua-Chem, Inc., Milwaukee, Wis. 53201
J. Heat Transfer. Feb 1984, 106(1): 184-190 (7 pages)
Published Online: February 1, 1984
Article history
Received:
October 21, 1982
Online:
October 20, 2009
Citation
Jensen, M. K., and Jackman, D. L. (February 1, 1984). "Prediction of Nucleate Pool Boiling Heat Transfer Coefficients of Refrigerant-Oil Mixtures." ASME. J. Heat Transfer. February 1984; 106(1): 184–190. https://doi.org/10.1115/1.3246632
Download citation file:
Get Email Alerts
Cited By
A Comparative Study of Thermoconvective Flows of a Newtonian Fluid Over Three Horizontal Undulated Surfaces in a Porous Medium
J. Heat Transfer (September 2022)
Related Articles
Additive Adsorption and Interfacial Characteristics of Nucleate Pool Boiling in Aqueous Surfactant Solutions
J. Heat Transfer (July,2005)
Planar Simulation of Bubble Growth in Film Boiling in Near-Critical Water Using a Variant of the VOF Method
J. Heat Transfer (June,2004)
Convective Boiling of R-134a Near the Micro-Macroscale Transition Inside a Vertical Brazed Plate Heat Exchanger
J. Heat Transfer (September,2018)
Related Proceedings Papers
Related Chapters
Thermal Design Guide of Liquid Cooled Systems
Thermal Design of Liquid Cooled Microelectronic Equipment
Studies Performed
Closed-Cycle Gas Turbines: Operating Experience and Future Potential
Pin Floating on Surface of a Liquid
Case Studies in Fluid Mechanics with Sensitivities to Governing Variables